TECHNICAL FIELD
[0001] The present disclosure relates to a pouch-type secondary battery, and more particularly,
to a pouch-type secondary battery having an increased energy density by reducing a
dead space and an apparatus for forming a pouch film that is used for the pouch-type
secondary battery.
BACKGROUND ART
[0003] Recently, the interest in electric products that may be operated by using electric
energy is increasing. Accordingly, as technology development and demand for electric
products are increasing, the demand for secondary batteries as energy sources is rapidly
increasing, in more diverse forms. Thus, a lot of researches on secondary batteries
are being carried out in order to meet various demands.
[0004] Secondary batteries are classified into pouch-type secondary batteries, cylindrical
secondary batteries, rectangular secondary batteries and the like depending on the
type of their exteriors, among which the pouch-type secondary battery is a secondary
battery in which an electrode assembly is included in a pouch case made of metal laminate
sheets. The pouch-type secondary battery has advantages in that it may be easily manufactured
with a low manufacturing cost and also it is easily to configure a battery pack having
a large capacity by connecting a plurality of unit cells in series and/or in parallel.
[0005] For example, a single cup-type pouch-type secondary battery includes a pouch case
made of aluminum laminate sheets and an electrode assembly accommodated in the pouch
case and having a plurality of stacked electrochemical cells, each having a positive
electrode, a separator and a negative electrode.
[0006] FIG. 1 is a schematic cross-sectional view showing a conventional pouch-type secondary
battery, and FIG. 2 is a diagram for illustrating a forming process in which the conventional
pouch film forming apparatus forms a concave groove in a pouch film.
[0007] Referring to FIG. 1, the pouch case includes a lower pouch film 1 and an upper pouch
film 2. Also, the upper pouch film 2 has a concave groove in which an electrode assembly
3 may be placed. The concave groove is formed at the upper pouch film 2 corresponding
to the shape of the electrode assembly 3, and the depth of the concave groove is determined
depending on the thickness of the electrode assembly 3.
[0008] Referring to FIG. 2, the conventional pouch film forming apparatus includes a die
4 and a punch 5. A forming groove 4a is formed at the die 4 with a shape corresponding
to a desired pouch case that is formed by using the pouch film 2. At this time, the
forming groove 4a has a depth corresponding to a depth of a concave groove to be formed
in the demanded pouch case. In addition, the punch 5 is used to place the pouch film
2 on the die 4 and apply a force thereto, namely press, in order to form a pouch case
having a concave groove with a desired depth by using the pouch film 2.
[0009] However, since the diameter of the forming groove 4a of the die 4 is larger than
the diameter of the punch 5, the concave groove of the pouch film 2 is not formed
completely in conformity with the forming groove 4a of the die. That is, due to the
difference in size between the forming groove 4a and the punch 5 and the somewhat
flexible property of the pouch film 2, in the forming process, the side surface of
the pouch film 2 is shaped obliquely, in a spaced state, to the sidewall of the forming
groove. Thus, if the side surface of the pouch film is formed obliquely as above,
the area of the bottom surface of the concave groove is reduced. For example, as shown
in FIG. 1, assuming that the full width of the reference surface of the concave groove
is L1, the full width of the bottom surface is L1 - 2 × (L2 + L3), which is smaller
than the reference surface of the concave groove.
[0010] However, since the size of the electrode assembly capable of being accommodated in
the pouch case is related to the area of the bottom surface of the concave groove,
the reduction of the area of the bottom surface of the concave groove is disadvantageous
to the energy density. Recently, a battery pack having a high energy density and a
compact design have been actively researched and developed. In order to implement
such a battery pack, it is pointed out that an energy density should be improved more
than a conventional technology in view of a secondary battery cell unit. Thus, it
is required to increase the energy density by reducing a dead space in the internal
space of the conventional pouch-type secondary battery.
DISCLOSURE
Technical Problem
[0011] The present disclosure is designed in view of the above conventional technique, and
the present disclosure is directed to providing a pouch-type secondary battery, which
is capable of increasing an energy density by accommodating a higher capacity electrode
assembly, compared to the conventional technique, by reducing a dead space inside
a pouch case, and an apparatus for forming a pouch film used for the pouch-type secondary
battery.
Technical Solution
[0012] In one aspect of the present disclosure, there is provided a pouch-type secondary
battery, which includes an electrode assembly having a positive electrode plate and
a negative electrode plate disposed to face each other and a pouch case having a concave
groove formed to accommodate the electrode assembly, wherein the pouch case includes
a first pouch film and a second pouch film thermally fused to the first pouch film,
and wherein a concave groove is formed in at least one of the first pouch film and
the second pouch film, and the concave groove has a bottom surface on which the electrode
assembly is placed so that the bottom surface has an area equal to or greater than
an area of a reference surface that covers an opening of the concave groove.
[0013] The concave groove may include a first side surface region in which a full width
of the concave groove is gradually decreased along the depth from the reference surface
and a second side surface region in which the full width of the concave groove is
gradually increased from an end point of the first side surface region to the bottom
surface.
[0014] The first side surface region may have a rounded shape.
[0015] A full width of the electrode assembly may correspond to the full width of the concave
groove at the end point of the first side surface region.
[0016] The electrode assembly may be configured so that at least one battery cell is stacked,
and a full width of each of the at least one battery cell may correspond to the full
width of the concave groove at a stacked location.
[0017] Among the at least one battery cell, the first battery cell group may be stacked
in the first side surface region, and the full width of each battery cell of the first
battery cell group may correspond to the full width of the concave groove included
in the first side surface region.
[0018] Among the at least one battery cell, the second battery cell group may be stacked
in the second side surface region, and the full width of each battery cell of the
second battery cell group may correspond to the full width of the concave groove included
in the second side surface region
[0019] The pouch-type secondary battery may further comprise an inner film configured to
surround an outer circumference of the electrode assembly accommodated in the pouch
case.
[0020] The concave groove may be formed at the first pouch film.
[0021] The first pouch film and the second pouch film may be formed using a single film,
and the second pouch film may be disposed to overlap the first pouch film to form
a single cup-type pouch case.
[0022] In another aspect of the present disclosure, there is also provided a pouch film
forming apparatus for forming the pouch case having the concave groove, the apparatus
comprising: a die configured to form a forming groove with a shape corresponding to
the concave groove and having a first die unit and a second die unit provided to relatively
move in a horizontal direction; and a punch configured to move into or out of the
forming groove and provided to closely adhere a concave groove target of the pouch
film to a surface of the forming groove by means of air pressure before a forming
process.
[0023] A top surface of the second die unit on which the pouch film is placed may be relatively
wider than the first die unit.
[0024] The punch may have a plurality of air discharge holes capable of injecting a compressed
air outwards.
[0025] The punch may be made of soft material that is shrinkable and expandable according
to the injection of air.
Advantageous Effects
[0026] According to an embodiment of the present disclosure, it is possible to provide a
pouch-type secondary battery capable of increasing an energy density by accommodating
a higher capacity electrode assembly by reducing a dead space inside the pouch case.
[0027] According to another embodiment of the present disclosure, it is possible to provide
a pouch film forming apparatus capable of forming a pouch film having a concave groove
whose bottom surface on which the electrode assembly may be placed is at least equal
to or greater than a reference surface that covers an opening of the concave groove
of the pouch film.
DESCRIPTION OF DRAWINGS
[0028] The accompanying drawings illustrate a preferred embodiment of the present disclosure
and together with the foregoing disclosure, serve to provide further understanding
of the technical features of the present disclosure, and thus, the present disclosure
is not construed as being limited to the drawing.
FIG. 1 is a schematic cross-sectional view showing a conventional pouch-type secondary
battery.
FIG. 2 is a diagram for illustrating a forming process in which the conventional pouch
film forming apparatus forms a concave groove in a pouch film.
FIG. 3 is a perspective view schematically showing a pouch case according to an embodiment
of the present disclosure.
FIG. 4 is a schematic cross-sectional view showing the pouch case and the electrode
assembly of FIG. 3.
FIG. 5 is a schematic cross-sectional view showing that the electrode assembly is
accommodated in the pouch case of FIG. 3 and then the pouch case is sealed.
FIG. 6 is a schematic cross-sectional view showing the pouch-type secondary battery
of FIG. 5 that is vertically reversed after the sealing portion is folded.
FIG. 7 is a perspective view showing an electrode assembly of a pouch-type secondary
battery according to another embodiment of the present disclosure.
FIG. 8 is a schematic cross-sectioned view showing the pouch-type secondary battery
according to another embodiment of the present disclosure.
FIG. 9 is a perspective view showing an electrode assembly of a pouch-type secondary
battery according to still another embodiment of the present disclosure.
FIG. 10 is a schematic cross-sectioned view showing the pouch-type secondary battery
according to still another embodiment of the present disclosure.
FIGS. 11 to 14 are diagrams for illustrating a forming process in which the pouch
film forming apparatus according to an embodiment of the present disclosure forms
a concave groove in a pouch film.
FIGS. 15 and 16 are diagrams for illustrating a forming process in which the pouch
film forming apparatus according to another embodiment of the present disclosure forms
a concave groove in the pouch film.
BEST MODE
[0029] Hereinafter, preferred embodiments of the present disclosure will be described in
detail with reference to the accompanying drawings. Prior to the description, it should
be understood that the terms used in the specification and the appended claims should
not be construed as limited to general and dictionary meanings, but interpreted based
on the meanings and concepts corresponding to technical aspects of the present disclosure
on the basis of the principle that the inventor is allowed to define terms appropriately
for the best explanation.
[0030] Therefore, the description proposed herein is just a preferable example for the purpose
of illustrations only, not intended to limit the scope of the disclosure, so it should
be understood that other equivalents and modifications could be made thereto without
departing from the scope of the disclosure.
[0031] Since the embodiments disclosed herein are provided for more perfect explanation
of the present disclosure, the shape, size and the like of components may be exaggerated,
omitted or simplified in the drawings for better understanding. Thus, the size and
ratio of components in the drawings do not wholly reflect the actual size and ratio.
[0032] FIG. 3 is a perspective view schematically showing a pouch case according to an embodiment
of the present disclosure, and FIG. 4 is a schematic cross-sectional view showing
the pouch case and the electrode assembly of FIG. 3.
[0033] Referring to FIGS. 3 and 4, a pouch-type secondary battery according to an embodiment
of the present disclosure includes an electrode assembly 10, and a pouch case 20 composed
of a first pouch film 30 having a concave groove 31 capable of accommodating the electrode
assembly 10 and a second pouch film 40 capable of being thermally fused to the first
pouch film 30 in a vertical direction.
[0034] As will be explained in more detail below, the pouch case 20 according to the present
disclosure has the same full width as a conventional pouch case 20, but may further
ensure an internal space in which the electrode assembly 10 may be effectively accommodated.
Thus, based on the same specification, the pouch-type secondary battery according
to the present disclosure has a higher energy density because it may accommodate the
electrode assembly 10 with a larger capacity in comparison to a conventional pouch-type
secondary battery. If the pouch-type secondary batteries according to the present
disclosure are used, it is possible to design a more compact battery pack, compared
to a conventional one.
[0035] First, the electrode assembly 10 of the pouch-type secondary battery according to
the present disclosure will be briefly described. Though not shown in detail for the
sake of convenience of illustration, the electrode assembly 10 may include a positive
electrode plate and a negative electrode plate which are disposed to face each other.
The positive electrode plate and the negative electrode plate are formed by coating
a current collector with active material slurry. The slurry is usually formed by stirring
a solvent in which a granular active material, an auxiliary conductor, a binder, a
plasticizer and the like are added.
[0036] The positive electrode plate and the negative electrode plate are provided in a plate
form and are disposed to be spaced apart so that their plates face each other. A separator
is interposed between the positive electrode plate and the negative electrode plate
so that the positive electrode plate and the negative electrode plate are not in direct
contact with each other. The separator has a porous structure so that the positive
electrode plate and the negative electrode plate are blocked not to be short-circuited
allow charge transfer during charging or discharging.
[0037] An electrode lead may be attached to the electrode assembly 10, and the electrode
lead may be exposed out of the pouch case 20 to serve as an electrode terminal that
may be electrically connected to another secondary battery or an external device.
The electrode lead may be coupled with an electrode tab that is directly connected
to the electrode assembly 10. Here, at least one positive electrode tab and at least
one negative electrode tab may be coupled with a positive electrode lead 11 and a
negative electrode lead 12, respectively.
[0038] The pouch case 20 may include an outer insulating layer made of a polymer material,
an inner adhesive layer, and a metal layer interposed between the outer insulating
layer and the inner adhesive layer. Here, the metal layer may be made of any one selected
from the group consisting of iron, carbon, an alloy of chromium and manganese, an
alloy of iron, chromium and nickel, and aluminum or equivalents thereof, and the aluminum
metal foil is widely used. The pouch case 20 protects the electrode assembly 10 and
internal components such as the electrolyte, and performs the function of complementing
electrochemical properties of the electrode assembly 10 and the electrolyte and dissipating
heat therefrom.
[0039] The pouch case 20 of this embodiment is a single cup-type pouch case 20 and is composed
of a first pouch film 30 and a second pouch film 40 whose one edges are connected
to each other as shown in FIG. 3. In addition, the first pouch film 30 has a concave
groove 31 so that the electrode assembly 10 may be placed therein. The concave groove
31 of the first pouch film 30 may be formed to have a depth corresponding to the thickness
of the electrode assembly 10 by means of a forming process.
[0040] In this embodiment, the concave groove 31 is formed only in the first pouch film
30, but a concave groove 31 of the same shape may also be formed in the second pouch
film 40. That is, by forming the concave groove 31 in both the first pouch film 30
and the second pouch film 40, it is possible to accommodate a thicker electrode assembly
10 than the electrode assembly 10 of this embodiment. In addition, the first pouch
film 30 and the second pouch film 40 may be separately prepared and be thermally fused
in a vertical direction.
[0041] FIG. 5 is a schematic cross-sectional view showing that the electrode assembly is
accommodated in the pouch case of FIG. 3 and then the pouch case is sealed, and FIG.
6 is a schematic cross-sectional view showing the pouch-type secondary battery of
FIG. 5 that is vertically reversed after the sealing portion is folded.
[0042] Referring to FIGS. 4 to 6, a bottom surface 36 of the concave groove 31 on which
the electrode assembly 10 is capable of being placed may have an area equal to or
greater than an area of a reference surface 33 that covers an opening of the concave
groove 31. Here, the reference surface 33 may be understood as a surface corresponding
to one surface of the second pouch film 40 that covers the opening of the concave
groove 31.
[0043] For reference, the single cup-type pouch case 20 has a sealing portion S formed by
disposing the second pouch film 40 to overlap the first pouch film 30 and then thermally
fusing their terrace portions, namely their outer rim portions that overlap each other.
As shown in FIG. 6, the sealing portion S may be folded toward the electrode assembly
10. At this time, the full width of the pouch-type secondary battery may be approximately
equal to the full width of the reference surface 33.
[0044] Referring to FIGS. 4 and 5 again, the concave groove 31 has a first side surface
region 34 in which the full width of the concave groove 31 is gradually decreased
along the depth from the reference surface 33 and a second side surface region 35
in which the full width of the concave groove 31 is gradually increased from an end
point of the first side surface region 34 to the bottom surface 36 of the concave
groove 31 that is a deepest place.
[0045] The first side surface region 34 has a rounded shape. In other words, the first side
surface region 34 is a portion that forms a top of the concave groove 31, and may
be concavely recessed toward the electrode assembly 10 when the pouch case 20 is viewed
from the side.
[0046] By providing the first side surface region 34 in the concave groove 31 of the first
pouch film 30, it is possible to prevent stress from concentrating on the corresponding
portion. In other words, if the pouch film reaches the softness limit of the materials
of the metal layer and the insulating layer during the foaming process, the pouch
film may be torn without being able to withstand the stress caused by the foaming.
In particular, a top edge of the concave groove 31 is vulnerable to stress even after
forming. Thus, in the present disclosure, by providing the first side surface region
34 formed in a rounded shape, the stress may not concentrate but be dispersed at the
top edge of the concave groove 31. The first side surface region 34 may correspond
to a curvature R of an edge portion of a die 100 of a pouch film forming apparatus,
explained later.
[0047] Meanwhile, it is desirable that the first side surface region 34 is relatively very
short compared to the second side surface region 35 in view of the space efficiency
inside the pouch case 20. In this embodiment, the first side surface region 34 is
formed in the concave groove 31, but the first side surface region 34 may be not formed
at the concave groove 31. That is, the concave groove 31 may form the second side
surface region 35 having an increasing full width directly from the reference surface
33, without the first side surface region 34.
[0048] The second side surface region 35 may be a region that determines the depth of the
concave groove 31. That is, the second side surface region 35 may correspond approximately
to the thickness of the electrode assembly 10. The second side surface region 35 is
formed so that the full width of the concave groove 31 is gradually increased along
the depth of the concave groove 31, namely along a depression direction. The end point
of the second side surface region 35 is connected to four edges of the bottom surface
36 of the concave groove 31. Thus, the width of the bottom surface 36 of the concave
groove 31 may be determined by the slope or length of the second side surface region
35. In this embodiment, the second side surface region 35 is formed so that the bottom
surface 36 of the concave groove 31 is identical to the reference surface 33 of the
concave groove 31.
[0049] If the bottom surface 36 of the concave groove 31 is equal to the reference surface
33 of the concave groove 31 as in the present disclosure, it is possible that an electrode
assembly 10, which is larger than the conventional electrode assembly 10 (see FIG.
1), is placed in the concave groove 31.
[0050] More specifically, referring to FIGS. 1 and 5, a conventional pouch-type secondary
battery and a pouch-type secondary battery according to the present disclosure having
the same full width of L1 will be compared. In the conventional pouch-type secondary
battery, the full width (LI) is the sum of a total width (T1) of the conventional
electrode assembly 10, a full width (2 × L3) of a dead space and a full width (2 ×
L2) of the stress relaxed region. Meanwhile, in the pouch-type secondary battery according
to the present disclosure, the full width (LI) is the sum of a full width (T2) of
the electrode assembly 10 and a full width (2 × L2) of the first side surface region
34.
[0051] In summary, the following relation is established between the conventional pouch-type
secondary battery and the pouch-type secondary battery according to an embodiment
of the present disclosure.
[0052] Thus, in the present disclosure, it may be understood that even though the full width
of the pouch case is the same, an electrode assembly 10 larger than the electrode
assembly 10 capable of being accommodated in the conventional pouch case 20 may be
accommodated.
[0053] As described above, the pouch case 20 according to the present disclosure is formed
such that the bottom surface 36 of the concave groove 31 is formed identical to the
reference surface 33, and thus it is possible that the electrode assembly 10 having
a full width corresponding to the full width of the concave groove 31 at least at
the end point of the first side surface region 34 may be accommodated, which may increase
the energy density of the pouch-type secondary battery.
[0054] Hereinafter, a pouch-type secondary battery according to another embodiment of the
present disclosure will be described.
[0055] FIG. 7 is a perspective view showing an electrode assembly of a pouch-type secondary
battery according to another embodiment of the present disclosure, and FIG. 8 is a
schematic cross-sectioned view showing the pouch-type secondary battery according
to another embodiment of the present disclosure.
[0056] Referring to FIGS. 7 and 8, the pouch-type secondary battery according to another
embodiment of the present disclosure includes an electrode assembly 10' and a pouch
case 20 composed of a first pouch film 30 having a concave groove 31 capable of accommodating
the electrode assembly 10' and a second pouch film 40 capable of being thermally (H)
fused to the first pouch film 30 in a vertical direction.
[0057] The pouch-type secondary battery according to another embodiment of the present disclosure
is different from the pouch-type secondary battery according to the former embodiment
of the present disclosure just in the configuration and shape of the electrode assembly
10', and shapes and roles of other components may be identical.
[0058] In an electrode assembly 10' of the pouch-type secondary battery according to another
embodiment of the present disclosure, at least one battery cell 10-1, ..., 10-4 may
be stacked. At this time, at least one battery cell 10-1, ..., 10-4 may have different
full widths. In more detail, the full width of each of the at least one battery cell
10-1, ..., 10-4 may correspond to the full width of the concave groove 31 at a location
where each of the at least one battery cell 10-1, ..., 10-4 is stacked, when at least
one battery cell 10-1, ..., 10-4 is accommodated in the concave groove 31 of the pouch
case 20.
[0059] For example, among the at least one battery cell 10-1, ..., 10-4, the battery cell
10-4 stacked at a location contacting the bottom surface 36 of the concave groove
31 may be formed to have a full width identical to the longest full width of the concave
groove 31.
[0060] In other words, each of the at least one battery cell 10-1, ..., 10-4 may be formed
to have a full width elongated as long as possible so that both ends thereof are in
contact with the concave groove 31 at a located accommodated and stacked in the concave
groove 31. By doing so, when being accommodated in the concave groove 31, both ends
of the at least one battery cell 10-1, ..., 10-4 may be partially in contact with
the inner surface of the concave groove 31.
[0061] The at least one battery cell 10-1, ..., 10-4 may be classified into a first battery
cell group 10a stacked in the first side surface region 34 in which the full width
of the concave groove 31 is gradually decreased along the depth from the reference
surface 33 and a second battery cell group 10b stacked in the second side surface
region 35 in which the full width of the concave groove 31 is gradually increased
from an end point of the first side surface region 34 to the bottom surface 36.
[0062] For example, as shown in FIG. 8, the first battery cell group 10a may include a single
battery cell 10-1, and the second battery cell group 10b may include three battery
cells 10-2, ..., 10-4.
[0063] The full width of the battery cell 10-1 of the first battery cell group 10a may correspond
to the full width of the concave groove 31 included in the first side surface region
34.
[0064] In addition, the full widths of the battery cells 10-2, ..., 10-4 of the second battery
cell group 10b may correspond to the full width of the concave groove 31 included
in the second side surface region 35.
[0065] In other words, as the at least one battery cell 10-1, ..., 10-4 included in the
first battery cell group 10a and the second battery cell group 10b have different
full widths, the side surface of the electrode assembly 10' may be formed in a step
shape corresponding to the full width of the concave groove 31.
[0066] Accordingly, the side surface of the electrode assembly 10' may have a step structure
with a stair shape.
[0067] In the pouch-type secondary battery according to another embodiment of the present
disclosure, since the full widths of the at least one battery cell 10-1, ..., 10-4
are extended corresponding to the full width of the concave groove 31 that is increased
or decreased from the reference surface 33 to the bottom surface 36, the at least
one battery cell 10-1, ..., 10-4 may have different volumes to be as close to the
volume of the concave groove 31 as possible.
[0068] By doing so, by reducing the empty space in the concave groove 31 where a battery
is not accommodated as much as possible, the energy density of the pouch-type secondary
battery may be improved.
[0069] Meanwhile, even though it has been described that four battery cells 10-1, ..., 10-4
are stacked in the electrode assembly 10' depicted in FIGS. 7 and 8, it is also possible
that the battery cells 10-1, ..., 10-4 are designed to have a smaller thickness and
then five or more battery cells are stacked.
[0070] In other words, as a plurality of battery cells are stacked in the electrode assembly
10' to minimize the empty space in the concave groove 31, the distance between both
ends of each battery cell and the side surface of the inside of the concave groove
31 is reduced so that battery cells are filled in the space of the concave groove
31 as much as possible.
[0071] Hereinafter, a pouch-type secondary battery according to still another embodiment
of the present disclosure will be described.
[0072] FIG. 9 is a perspective view showing an electrode assembly of a pouch-type secondary
battery according to still another embodiment of the present disclosure, and FIG.
10 is a schematic cross-sectioned view showing the pouch-type secondary battery according
to still another embodiment of the present disclosure.
[0073] Referring to FIGS. 9 and 10, in the pouch-type secondary battery according to still
another embodiment of the present disclosure, at least one battery cell 10-1, ...,
10-4 may be stacked in the electrode assembly 10', and an outer circumference of the
at least one battery cell 10-1, ..., 10-4 may be surrounded by an inner film 50.
[0074] In more detail, the inner film 50 may have a tube shape as shown in FIG. 9 to surround
the outer circumference of the at least one battery cell 10-1, ..., 10-4 as the at
least one battery cell 10-1, ..., 10-4 is inserted therein.
[0075] The inner film 50 may be a thermally shrinkage tube that may shrink when heat (H)
is applied thereto. By heating after the at least one battery cell 10-1, ..., 10-4
are inserted in the inner film 50 as described above, the inner film 50 may surround
the outer circumference of the at least one battery cell 10-1, ..., 10-4 to fit the
outer shape thereof.
[0076] In other words, if heat (H) is applied, the inner film 50 may shrink while surrounding
the outer circumference of the at least one battery cell 10-1, ..., 10-4 inserted
therein into a shape corresponding to the step structure thereof.
[0077] Accordingly, when the at least one battery cell 10-1, ..., 10-4 having different
full widths are stacked and accommodated in the concave groove 31, the inner film
50 may support the side surface of the at least one battery cell 10-1, ..., 10-4 so
that the at least one battery cell 10-1, ..., 10-4 does not move inside the concave
groove 31.
[0078] Meanwhile, even though it has been described that four battery cells 10-1, ..., 10-4
are stacked in the electrode assembly 10' depicted in FIGS. 9 and 10, it is also possible
that the battery cells 10-1, ..., 10-4 are designed to have a smaller thickness and
then five or more battery cells are stacked.
[0079] In other words, as a plurality of battery cells are stacked in the electrode assembly
10' to minimize the empty space in the concave groove 31, the distance between both
ends of each battery cell and the side surface of the inside of the concave groove
31 is reduced so that battery cells are filled in the space of the concave groove
31 as much as possible.
[0080] Hereinafter, a pouch film forming apparatus for forming the pouch case 20 will be
described with reference to FIGS. 11 to 14.
[0081] FIGS. 11 to 14 are diagrams for illustrating a forming process in which the pouch
film forming apparatus according to an embodiment of the present disclosure forms
the concave groove 31 in a pouch film.
[0082] A pouch film forming apparatus according to an embodiment of the present disclosure
includes a die 100 composed of a first die unit 120 and a second die unit 130, which
are provided to be relatively movable in a horizontal direction to form the forming
groove 110 with a shape corresponding to the concave groove 31, and a punch 200 configured
to move into or out of the forming groove 110 and to closely adhere a concave groove
target 30a of the pouch film to the surface of the forming groove 110 by means of
air pressure before the forming process.
[0083] The die 100 is a metallic structure having the forming groove 110 with the same shape
as the concave groove 31 of the pouch film and serves as a mold. In particular, the
first die unit 120 and the second die unit 130 constituting the die 100 according
to the present disclosure are provided to be relatively movable in the horizontal
direction. Alternatively, it is also possible that any one of the first die unit 120
and the second die unit 130 is moved with respect to the other or both of them are
horizontally moved relative to each other.
[0084] The first die unit 120 and/or the second die unit 130 may be moved relative to each
other using, for example, a linear motion (LM) guide (not shown) as a moving means
of the die 100. Also, any driving device may be used as long as it is able to move
the first die unit 120 and the second die unit 130 relative to each other.
[0085] In the present disclosure, the first die unit 120 and the second die unit 130 are
relatively moved in the horizontal direction, so that the pouch film may be easily
pulled out from the forming groove 110 of the die 100 while maintaining its formed
shape after the forming process.
[0086] In addition, the top surface of the second die unit 130 on which the pouch film is
placed may be relatively larger than the first die unit 120. In the single cup-type
pouch case 20, the first pouch film 30 and the second pouch film 40 are integrally
formed so that their one side edges are connected to each other. For better manufacture
of the single cup-type pouch case 20, the second die unit 130 may be made wider than
the top surface of the first die unit 120 to support the second pouch film 40 when
the concave groove 31 is formed in the first pouch film 30.
[0087] The punch 200 according to this embodiment is provided to be movable up and down
with respect to the forming groove 110 of the die 100 so that the concave groove target
30a of the pouch film placed on the die 100 is pressed into the forming groove 110.
In particular, in this embodiment, a plurality of air discharge holes 210 for spraying
a compressed air from the inside to the outside are provided at a lower end of the
punch 200, so that the pouch film may be closely adhered to the surface of the forming
groove 110 by air pressure.
[0088] Meanwhile, a corner portion of the forming groove 110 of the die 100 and a corner
portion of the punch 200 are rounded to have a predetermined curvature, so that the
stress applied to the pouch film during the forming process may be reduced to prevent
the pouch film from being damaged.
[0089] Hereinafter, the forming process of the pouch case 20 will be briefly described.
[0090] As shown in FIGS. 11 and 12, a pouch film is placed on the die 100, and the concave
groove target 30a of the pouch film is pressed using the punch 200. At this time,
the concave groove target 30a of the pouch film is brought into contact with the bottom
surface 36 of the forming groove 110.
[0091] Then, as shown in FIG. 13, an air compressor (not shown) is operated to discharge
a compressed air out of the punch 200 through the air discharge holes 210. Accordingly,
the pouch film may be closely adhered to the side surface of the forming groove 110.
If the pouch film is completely formed, the air compressor stops operating.
[0092] After that, as shown in FIG. 14, the punch 200 is removed from the die 100, and then
the first die unit 120 and the second die unit 130 are moved relative to each other
such that the formed pouch film may be safely removed from the die 100. Then, the
pouch film is completely removed from the die 100 to complete the forming process.
[0093] According to the pouch film forming apparatus configured as above, the pouch film
may be mechanically formed such that the bottom surface 36 of the concave groove 31
has an area equal to or greater than an area of the reference surface 33 of the pouch
film.
[0094] Hereinafter, a pouch film forming apparatus according to another embodiment of the
present disclosure will be described.
[0095] FIGS. 15 and 16 are diagrams for illustrating a forming process in which the pouch
film forming apparatus according to another embodiment of the present disclosure forms
a concave groove in the pouch film. The same reference numerals as those in the former
embodiment denote the same components, and the same components will not be described
in detail.
[0096] The punch 200 of this embodiment is made of a flexible material capable of shrinking
or expanding as air is injected. For example, in this embodiment, the punch 200 is
an air bag made of rubber into which air may be injected, and the air bag may be inflated
when the air is injected therein.
[0097] Thus, as shown in FIG. 15, the pouch film is pushed into the forming groove 110 by
pressing the concave groove target 30a using the punch 200 into which a predetermined
amount of air is injected. After that, as shown in FIG. 16, if air is injected again
in a state where the punch 200 is inserted into the forming groove 110, the punch
200 expands according to the shape of the forming groove 110, so that the concave
groove target 30a of the pouch film is closely adhered to the surface of the forming
groove 110.
[0098] After that, the air is taken out to shrink the punch 200, and then the first die
unit 120 and the second die unit 130 are moved relative to each other to pull the
pouch film out of the forming groove 110.
[0099] In the pouch film forming apparatus according to another embodiment of the present
disclosure, the punch 200 is made of a soft material and is thus softer than the punch
200 of the former embodiment that is made of a hard material. Thus, the pouch film
is less likely to be damaged during the foaming process. In addition, since the punch
200 made of a soft material inflates inside the forming groove 110 to press the entire
concave groove target 30a of the pouch film, the concave groove target 30a is more
closely adhered to the forming groove 110 of the pouch film, thereby further improving
the forming completeness.
[0100] The present disclosure has been described in detail. However, it should be understood
that the detailed description and specific examples, while indicating preferred embodiments
of the disclosure, are given by way of illustration only, since various changes and
modifications within the spirit and scope of the disclosure will become apparent to
those skilled in the art from this detailed description.
[0101] Meanwhile, when the terms indicating up, down, left, right, front and rear directions
are used in the specification, it is obvious to those skilled in the art that these
merely represent relative locations for convenience in explanation and may vary based
on a location of an observer or a shape in which an object is placed.
1. A pouch-type secondary battery, which includes an electrode assembly having a positive
electrode plate and a negative electrode plate disposed to face each other and a pouch
case having a concave groove formed to accommodate the electrode assembly,
wherein the pouch case includes a first pouch film and a second pouch film thermally
fused to the first pouch film, and
wherein a concave groove is formed in at least one of the first pouch film and the
second pouch film, and the concave groove has a bottom surface on which the electrode
assembly is placed so that the bottom surface has an area equal to or greater than
an area of a reference surface that covers an opening of the concave groove.
2. The pouch-type secondary battery according to claim 1,
wherein the concave groove includes a first side surface region in which a full width
of the concave groove is gradually decreased along the depth from the reference surface
and a second side surface region in which the full width of the concave groove is
gradually increased from an end point of the first side surface region to the bottom
surface.
3. The pouch-type secondary battery according to claim 2,
wherein the first side surface region has a rounded shape.
4. The pouch-type secondary battery according to claim 2,
wherein a full width of the electrode assembly corresponds to the full width of the
concave groove at the end point of the first side surface region.
5. The pouch-type secondary battery according to claim 2,
wherein the electrode assembly is configured so that at least one battery cell is
stacked, and a full width of each of the at least one battery cell corresponds to
the full width of the concave groove at a stacked location.
6. The pouch-type secondary battery according to claim 5,
wherein among the at least one battery cell, the first battery cell group is stacked
in the first side surface region, and the full width of each battery cell of the first
battery cell group corresponds to the full width of the concave groove included in
the first side surface region, and
wherein among the at least one battery cell, the second battery cell group is stacked
in the second side surface region, and the full width of each battery cell of the
second battery cell group corresponds to the full width of the concave groove included
in the second side surface region
7. The pouch-type secondary battery according to claim 1, further comprising:
an inner film configured to surround an outer circumference of the electrode assembly
accommodated in the pouch case.
8. The pouch-type secondary battery according to claim 1,
wherein the concave groove is formed at the first pouch film.
9. The pouch-type secondary battery according to claim 8,
wherein the first pouch film and the second pouch film are formed using a single film,
and the second pouch film is disposed to overlap the first pouch film to form a single
cup-type pouch case.
10. A pouch film forming apparatus for forming the pouch case having the concave groove
as defined in claim 1, the apparatus comprising:
a die configured to form a forming groove with a shape corresponding to the concave
groove and having a first die unit and a second die unit provided to relatively move
in a horizontal direction; and
a punch configured to move into or out of the forming groove and provided to closely
adhere a concave groove target of the pouch film to a surface of the forming groove
by means of air pressure before a forming process.
11. The pouch film forming apparatus according to claim 10,
wherein a top surface of the second die unit on which the pouch film is placed is
relatively wider than the first die unit.
12. The pouch film forming apparatus according to claim 10,
wherein the punch has a plurality of air discharge holes capable of injecting a compressed
air outwards.
13. The pouch film forming apparatus according to claim 10,
wherein the punch is made of soft material that is shrinkable and expandable according
to the injection of air.